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i have the following problem with a login script. at the moment i refresh my site and would like to change mysql into mysqli. i have a working code, that works with mysql like it should to. now i get in trouble with changing that into mysqli, which doesn't work.

here is the original mysql code:

while($row = mysql_fetch_array($sql)){ 

    $id = $row["id"];   
    session_register('id'); 
    $_SESSION['id'] = $id;

mysql_query("UPDATE tableA SET time=now(), x4=x4 + 1 WHERE id='$id'"); 
mysql_query("DELETE FROM tableB WHERE (NOW() - INTERVAL 1 DAY) > Date AND ID='$id'"); 
        $result = mysql_query("SELECT COUNT(*) AS val FROM tableB WHERE ID='$id'");
        $count = mysql_fetch_assoc($result);
        var_dump($count);

    if ($count [val] <xy){  
        mysql_query("INSERT INTO tableB (Date, ID) VALUES (now(),'$id') ");
        mysql_query("UPDATE tableA SET x7=x7 + 1 WHERE id='$id'");

and here is the mysqli version, that wont work and i dont know why:

$time = gmdate("M d Y H:i:s", time());
        $id = '".$row["id"]."';

$get_id = "SELECT id FROM tableA WHERE x1='".$x1."' AND x2='".$x2."'";
            $result = mysqli_query($db, $get_id);

            if ($result === false) {
                printf("Errormessage 1");
                exit();
                }

            $row = $result->fetch_array(MYSQLI_ASSOC);

            $update = "UPDATE tableA SET time=now(), x4=x4 + 1 WHERE id='".$row["id"]."'"; 
            $result2 = mysqli_query($db, $update);

            if ($result2 === false) {
                printf("Errormessage 2");
                exit();
                }

            $reset = "DELETE FROM tableB WHERE (NOW() - INTERVAL 1 DAY) > Date AND ID='".$row["id"]."'";
            $result3 = mysqli_query($db, $reset);

            if ($result3 === false) {
                printf("Errormessage 4");
                exit();
                }

            $count = "SELECT COUNT(*) AS val FROM tableB WHERE ID='".$row["id"]."'";
            $result4 = mysqli_query($db, $count);

            if ($result4 === false) {
                printf("Errormessage 5");
                exit();
                }

            $sum = $result4->fetch_assoc($count);
            var_dump($sum);

            if ($count [val] <xy){  

            $insert = "INSERT INTO TableB (Date, ID) VALUES(?,?) ";
            if($query = $db->prepare($insert)){
                $query->bind_param('ss', $time, $id);
                $query->execute();

            $update_x = "UPDATE tableA SET x7=x7 + 1 WHERE id='".$row["id"]."'";
            $result5 = mysqli_query($db, $update_x);

            if ($result5 === false) {
                printf("Errormessage 5");
                exit();
share|improve this question
    
what is the error? – Jakub Mar 13 '12 at 13:43
    
@John I deleted my answer and fixed the quoting to please the syntax highlighter. – Michael Berkowski Mar 13 '12 at 13:47
    
no error will be displayed. it just headers to the goal. – John Mar 13 '12 at 13:48
    
@John If one of the answers solved your problem, you can mark it as accepted. Leaving your question in place will help other people with similar problems in the future. – jeroen Mar 13 '12 at 15:50

You haven't mentioned the actual error but it seems that problem occurs from here:

 $row = $result->fetch_array(MYSQLI_ASSOC);

you didnot use a loop here like your mysql version of code.

share|improve this answer
    
hello, now i get the error: Warning: mysqli_result::fetch_assoc() expects exactly 0 parameters, 1 given in /var/www/web775/html/login.php on line 100 NULL what is in that line: $sum = $result4->fetch_assoc($count); but there are 2 parameters?! – John Mar 13 '12 at 14:11
    
you are referencing it through your result object you dont need to pass any parameters. Why did you pass $count???? – Shayan Husaini Mar 13 '12 at 14:59
    
because i thought this is necessary to bind it to an object when working with mysqli. when i start it without referencing, i get the errormessage: array(1) { ["val"]=> string(1) "0" } – John Mar 13 '12 at 15:06
    
it is already binded with your result object – Shayan Husaini Mar 13 '12 at 15:11
    
than it seems to be something else wrong with that or why is it displaying that errormessage. at the moment the tableB is empty that says "0" but why is that not filling with input? i do not understand why it shows that message even when i use a emailadress with faults. – John Mar 13 '12 at 15:16

You are attempting to insert $time into what appears to be a DATETIME column, based on your old mysql version, but it is improperly formatted.

$time = gmdate("M d Y H:i:s", time());

Based on your use of NOW() in the old code, we assume TableB.Date to be a DATETIME type:

mysql_query("INSERT INTO tableB (Date, ID) VALUES (now(),'$id') ");

So in your new code, since you don't use NOW() for the TableB insert, you should be creating $time as YYYY-MM-DD:

// Should be YYYY-MM-DDD H:i:s for MySQL
$time = gmdate("Y-m-d H:i:s", time());

// It gets inserted into TableB here
$insert = "INSERT INTO TableB (Date, ID) VALUES(?,?) ";
        if($query = $db->prepare($insert)){
            $query->bind_param('ss', $time, $id);
            $query->execute();

Or, just use MySQL's NOW() in the new code unless you have a reason to specify the time in PHP code:

$insert = "INSERT INTO TableB (Date, ID) VALUES(NOW() ,?) ";
        if($query = $db->prepare($insert)){
            $query->bind_param('s', $id);
            $query->execute();
share|improve this answer
    
okay, i changed that to NOW(). it is just necessary to calculate with that time. – John Mar 13 '12 at 14:10

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